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垂直和水平全局视觉纹理对人脑激活的差异。

Differential human brain activation by vertical and horizontal global visual textures.

机构信息

Department of Experimental Psychology, University of Oxford, Oxford, UK.

出版信息

Exp Brain Res. 2010 May;202(3):669-79. doi: 10.1007/s00221-010-2173-y. Epub 2010 Feb 4.

DOI:10.1007/s00221-010-2173-y
PMID:20131046
Abstract

Mid-level visual processes which integrate local orientation information for the detection of global structure can be investigated using global form stimuli of varying complexity. Several lines of evidence suggest that the identification of concentric and parallel organisations relies on different underlying neural substrates. The current study measured brain activation by concentric, horizontal parallel, and vertical parallel arrays of short line segments, compared to arrays of randomly oriented segments. Six subjects were scanned in a blocked design functional magnetic resonance imaging experiment. We compared percentage BOLD signal change during the concentric, horizontal and vertical blocks within early retinotopic areas, the fusiform face area and the lateral occipital complex. Unexpectedly, we found that vertical and horizontal parallel forms differentially activated visual cortical areas beyond V1, but in general, activations to concentric and parallel forms did not differ. Vertical patterns produced the highest percentage signal change overall and only area V3A showed a significant difference between concentric and parallel (horizontal) stimuli, with the former better activating this area. These data suggest that the difference in brain activation to vertical and horizontal forms arises at intermediate or global levels of visual representation since the differential activity was found in mid-level retinotopic areas V2 and V3 but not in V1. This may explain why earlier studies--using methods that emphasised responses to local orientation--did not discover this vertical-horizontal anisotropy.

摘要

中水平视觉过程整合了局部方向信息,用于检测全局结构,可以使用不同复杂程度的全局形状刺激来研究。有几条证据表明,同心和平行结构的识别依赖于不同的潜在神经基础。本研究通过同心、水平平行和垂直平行的短线段阵列,以及随机定向的线段阵列,测量了大脑的激活。6 名受试者在功能磁共振成像实验中进行了分组设计扫描。我们比较了早期视网膜区域、梭状回面孔区和外侧枕叶复合体中同心、水平和垂直块期间的 BOLD 信号变化百分比。出乎意料的是,我们发现垂直和水平平行形式在 V1 之外的视觉皮层区域产生了不同的激活,但总的来说,同心和平行形式的激活没有差异。垂直模式产生的信号变化总体百分比最高,只有 V3A 区在同心和平行(水平)刺激之间表现出显著差异,前者更好地激活了该区域。这些数据表明,垂直和水平形式的大脑激活差异出现在视觉表示的中间或全局水平,因为在中水平视网膜区域 V2 和 V3 中发现了差异活性,而不是在 V1 中。这可能解释了为什么早期的研究——使用强调局部方向反应的方法——没有发现这种垂直-水平各向异性。

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Lack of orientation specific adaptation to vertically oriented Glass patterns in human visual cortex: an fMRI adaptation investigation.人类视觉皮层中缺乏对垂直玻璃图案的定向特异性适应:一项 fMRI 适应研究。
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Parallelism in the brain's visual form system.大脑视觉形态系统中的并行现象。
Eur J Neurosci. 2013 Dec;38(12):3712-20. doi: 10.1111/ejn.12371. Epub 2013 Oct 7.
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Software for subjective visual vertical assessment: an observational cross-sectional study.主观视垂直评估软件:一项观察性横断面研究。

本文引用的文献

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